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Updated: Jul 10, 2026

The Power of Simplicity: Sea Urchin Embryos as in Vivo Developmental Models for Studying Complex Cell-to-cell Signaling Network Interactions
Published on: February 16, 2017
Integrative nuclear signaling in cell development--a role for FGF receptor-1
Michal K Stachowiak1, Pamela A Maher, Ewa K Stachowiak
1Molecular and Structural Neurobiology and Gene Therapy Program, State University of New York, Buffalo, New York 14214, USA. mks4@buffalo.edu
Abstract:
Ontogeny requires the coordinated regulation of multigene programs by a plethora of extracellular and intracellular signals, thereby allowing cells to transition between different states, including proliferation and differentiation. Disruption of this regulation can result in oncogenic transformation in which cells are "arrested" in the proliferative state. This article summarizes our current understanding of a novel "Integrative Nuclear Fibroblast Growth Factor Receptor-1 (FGFR1) Signaling" (INFS) pathway, which influences differentiation of neural progenitor cells and the associated gene activities. Activation of cell surface neurotransmitter, hormonal, or growth factor receptors stimulates the release of FGFR1 from cytoplasmic membranes into the cytosol. This process is enabled by the atypical transmembrane domain of FGFR1 and is facilitated by the interaction with pp90 ribosomal S6 kinase-1. Cytosolic FGFR1 is transported into the nucleus by importin beta and activates transcription in cooperation with CBP (cyclic AMP Responsive Element-Binding Protein) by augmenting RNA polymerase II activity and histone acetylation. To explain the developmental function of FGFR1, a "feed-forward-and-gate" signaling mechanism is presented in which the INFS pathway "feeds forward" the developmental signals to the common and essential transcriptional coactivator, CBP. The coupled activation of CBP (by INFS) and transcription factors (by specific signaling pathways) enables the coordinated regulation of multigene programs by developmental cues. In some cancer cells, in which INFS is inactive, the reconstitution of nuclear FGFR1 signaling may be used to reestablish this coordinated regulation thereby inhibiting tumor cell proliferation and inducing differentiation.
Insights
A novel nuclear signaling pathway involving Fibroblast Growth Factor Receptor-1 (FGFR1) regulates neural cell differentiation and gene activity. Restoring this pathway may inhibit cancer cell proliferation and promote differentiation.
Area of Science:
- Cellular Biology
- Molecular Biology
- Developmental Biology
Background:
- Cellular differentiation and proliferation are tightly regulated by complex signaling networks.
- Disruptions in these regulatory processes can lead to oncogenic transformation and uncontrolled cell growth.
- Understanding novel signaling pathways is crucial for deciphering developmental processes and disease mechanisms.
Purpose of the Study:
- To elucidate the novel Integrative Nuclear Fibroblast Growth Factor Receptor-1 (FGFR1) Signaling (INFS) pathway.
- To describe the role of INFS in neural progenitor cell differentiation and gene regulation.
- To present a "feed-forward-and-gate" mechanism for coordinated gene expression during development.
Main Methods:
- Investigated the release of FGFR1 from cytoplasmic membranes.
- Examined the nuclear import of FGFR1 via importin beta.
- Assessed the transcriptional activation by nuclear FGFR1 in cooperation with CBP and RNA polymerase II.
Main Results:
- FGFR1 is released from the membrane and translocated to the nucleus, influenced by upstream receptor activation and pp90 ribosomal S6 kinase-1.
- Nuclear FGFR1 augments RNA polymerase II activity and histone acetylation, cooperating with CBP.
- The INFS pathway "feeds forward" developmental signals to CBP, enabling coordinated multigene regulation.
Conclusions:
- The INFS pathway plays a critical role in regulating neural progenitor cell differentiation and gene expression.
- FGFR1's nuclear function is essential for coordinating developmental signaling.
- Reactivating nuclear FGFR1 signaling in cancer cells could potentially inhibit proliferation and induce differentiation.
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